Interface engineering for low-voltage operation of organic light-emitting diodes

IF 11.6 1区 物理与天体物理 Q1 PHYSICS, APPLIED Applied physics reviews Pub Date : 2025-03-25 DOI:10.1063/5.0206023
Hirohiko Fukagawa, Tsubasa Sasaki, Takuya Okada, Takahisa Shimizu, Taku Oono
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Abstract

Organic light-emitting diodes (OLEDs) have been studied intensively, and their practical applications are advancing. The efficiency of light-emitting materials has been improved significantly through the understanding of their emission mechanisms. However, the correlation between the bandgap of the emitter and the operating voltage in OLEDs remains unclear, because OLEDs require a complex multilayer configuration that includes many materials other than the emitter. It is difficult to investigate the exact energy diagram for OLEDs, which have many interfaces, and many uncertainties remain regarding the mechanisms of charge injection and recombination. In this review, we introduce both the charge injection and recombination mechanisms in OLEDs and the interface control technology effective for lowering their operating voltage. We explain the electron injection mechanism at organic/cathode interfaces, which is clarified by using organic bases as the electron injection layers. The hole injection mechanism in OLEDs, which is clarified by investigating the correlation between the characteristics of OLEDs and the actual energy levels at organic/anode interfaces, is also introduced. With the elucidation of the charge injection mechanism, holes and electrons can now be injected into various organic materials. These charge injection techniques minimize the voltage required for charge recombination. The correlation between the bandgap of the emitter and the minimum voltage required for OLED operation is clarified by controlling the energy levels at organic/organic interfaces. Understanding this correlation enables the design of molecules for ultralow-voltage OLEDs, thereby realizing blue OLEDs with an extremely low turn-on voltage of about 1.5 V.
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有机发光二极管低压工作界面工程
有机发光二极管(oled)的研究日益深入,其实际应用也在不断推进。通过对发光材料发光机理的了解,大大提高了发光材料的效率。然而,oled中发射极的带隙和工作电压之间的相关性仍然不清楚,因为oled需要复杂的多层结构,其中包括发射极以外的许多材料。由于有机发光二极管具有许多界面,因此很难对其精确的能量图进行研究,并且在电荷注入和复合机制方面仍存在许多不确定性。本文介绍了oled中的电荷注入和复合机制,以及降低其工作电压的界面控制技术。我们解释了在有机/阴极界面上的电子注入机制,用有机碱作为电子注入层澄清了这一机制。本文还介绍了有机发光二极管的空穴注入机理,通过研究有机发光二极管的特性与有机/阳极界面实际能级之间的关系,阐明了有机发光二极管的空穴注入机理。随着电荷注入机理的阐明,现在可以将空穴和电子注入到各种有机材料中。这些电荷注入技术将电荷重组所需的电压降至最低。通过控制有机/有机界面的能级,阐明了发射极带隙与OLED工作所需的最小电压之间的相关性。了解这种相关性可以设计超低电压oled的分子,从而实现具有约1.5 V极低导通电压的蓝色oled。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Applied physics reviews
Applied physics reviews PHYSICS, APPLIED-
CiteScore
22.50
自引率
2.00%
发文量
113
审稿时长
2 months
期刊介绍: Applied Physics Reviews (APR) is a journal featuring articles on critical topics in experimental or theoretical research in applied physics and applications of physics to other scientific and engineering branches. The publication includes two main types of articles: Original Research: These articles report on high-quality, novel research studies that are of significant interest to the applied physics community. Reviews: Review articles in APR can either be authoritative and comprehensive assessments of established areas of applied physics or short, timely reviews of recent advances in established fields or emerging areas of applied physics.
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